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Chemical kinetics reaction rate

R. WoUast in W. Stumm, ed.. Aquatic Chemical Kinetics, Reaction Rates of Processes in Natural Water, Wiley-Interscience, New York, 1990, pp. 431—445. [Pg.218]

Hering, J. G. and Morel, F. M. M. (1990). The kinetics of trace metal complexation implications for metal reactivity in natural waters. In Aquatic Chemical Kinetics -Reaction Rates of Processes in Natural Waters, ed. Stumm, W., Wiley Interscience Series on Environmental Science and Technology, New York, pp. 145-171. [Pg.260]

Hoffman, M. R. 1990. Catalysis in aquatic environments. In Aquatic Chemical Kinetics Reaction Rates of Processes in Natural Waters (W. Stumm, Ed.), pp. 71-112. Wiley, New York. [Pg.497]

In all CVD processes, we are dealing with the change from one state (i.e., the initial, low-temperature reactant gases) to a later one (i.e., the final state with some solid phase and product gases) in time. Since any practical commercial process must be completed quickly, the rate with which one proceeds from the initial to the final state is important. This rate will depend on chemical kinetics (reaction rates) and fluid dynamic transport phenomena. Therefore, in order to clearly understand CVD processes, we will not only examine chemical thermodynamics (Section 1.2), but also kinetics and transport (Section 1.3). [Pg.1]

Gedanken Flame Experiment. In order to illustrate how the problems caused by the requirements of temporal and spatial resolution and geometric and physical complexity are translated into computational cost, we have chosen to analyze a gedanken flame experiment. Consider a closed tube one meter long which contains a combustible gas mixture. We wish to calculate how the physical properties such as temperature, species densities, and position of the flame front change after the mixture is ignited at one end. The burning gas can be described, we assume, by a chemical kinetics reaction rate scheme which involves some tens of species and hundreds of chemical reactions, some of which are "stiff."... [Pg.336]

Hoigne J (1990) In Stumm W (ed) Aquatic chemical kinetics reaction rates of processes in natural waters. Wiley-Interscience, New York, NY, p 43... [Pg.321]

Chemical kinetics —> Reaction rate is the change in molar concentration of a reactant or product divided by the time required for the change to occur. [Pg.155]

Wehri I, B. 1990. Redox reactions of metal ions at mineral surfaces, in Aquatic chemical kinetics. Reaction rates of processes in natural waters, ed W. Stumm. New York Wiley-lnterscience. [Pg.587]

AQUATIC CHEMICAL KINETICS Reaction Rates of Processes in Natural Waters... [Pg.548]

Aquatic chemical kinetics reaction rates of processes in natural waters/edited by Werner Stumm. [Pg.552]


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